Cohesin's role in pluripotency and reprogramming.
File(s)Cohesin_extra view_for deposition.pdf (1.42 MB)
Accepted version
Author(s)
Gupta, P
Lavagnolli, T
Mira-Bontenbal, H
Fisher, AG
Merkenschlager, M
Type
Journal Article
Abstract
Cohesin is required for ES cell self-renewal and iPS-mediated reprogramming of somatic cells. This may indicate a special role for cohesin in the regulation of pluripotency genes, perhaps by mediating long-range chromosomal interactions between gene regulatory elements. However, cohesin is also essential for genome integrity, and its depletion from cycling cells induces DNA damage responses. Hence, the failure of cohesin-depleted cells to establish or maintain pluripotency gene expression could be explained by a loss of long-range interactions or by DNA damage responses that undermine pluripotency gene expression. In recent work we began to disentangle these possibilities by analyzing reprogramming in the absence of cell division. These experiments showed that cohesin was not specifically required for reprogramming, and that the expression of most pluripotency genes was maintained when ES cells were acutely depleted of cohesin. Here we take this analysis to its logical conclusion by demonstrating that deliberately inflicted DNA damage - and the DNA damage that results from proliferation in the absence of cohesin - can directly interfere with pluripotency and reprogramming. The role of cohesin in pluripotency and reprogramming may therefore be best explained by essential cohesin functions in the cell cycle.
Date Issued
2015-12-23
Date Acceptance
2015-11-27
Citation
Cell Cycle, 2015, 15 (3), pp.324-330
ISSN
1551-4005
Publisher
Taylor & Francis
Start Page
324
End Page
330
Journal / Book Title
Cell Cycle
Volume
15
Issue
3
Copyright Statement
This is an Accepted Manuscript of an article published by Taylor & Francis Group in Cell Cycle on 23 Dec 2015, available online at: http://www.tandfonline.com/10.1080/15384101.2015.1128593
Sponsor
Wellcome Trust
Grant Number
099276/Z/12/Z
Subjects
cell cycle
cohesin
enhancer-promoter interactions
gene expression
pluripotency
reprogramming
stress
Publication Status
Published